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Please use this identifier to cite or link to this item: http://hdl.handle.net/11375/29834
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dc.contributor.advisorBalakrishnan, Narayanaswamy-
dc.contributor.authorSamanta, Ramkrishna-
dc.date.accessioned2024-06-03T14:40:22Z-
dc.date.available2024-06-03T14:40:22Z-
dc.date.issued2024-
dc.identifier.urihttp://hdl.handle.net/11375/29834-
dc.description.abstractAfter providing a detailed literature review of the change-point detection methods, this work delves into presenting a probabilistic method for analyzing linear process data with dependent innovations, focusing on detecting change-points in the mean and estimating its spectral density. We develop a test for identifying change-points in the mean of the data, aiming to detect shifts in the underlying distribution. Additionally, we propose a consistent estimator for the spectral density of the data, contingent upon fundamental assumptions, notably the long-run variance. By leveraging probabilistic techniques, our approach provides reliable tools for understanding temporal changes in linear process data. Through theoretical analysis and empirical evaluation, we demonstrate the efficacy and consistency of our proposed methods, offering valuable insights for practitioners in various fields dealing with time series data analysis.en_US
dc.language.isoenen_US
dc.titleDETECTING CHANGE-POINTS IN THE MEAN OF MULTIVARIATE TIME SERIESen_US
dc.typeThesisen_US
dc.contributor.departmentMathematics and Statisticsen_US
dc.description.degreetypeThesisen_US
dc.description.degreeMaster of Science (MSc)en_US
Appears in Collections:Open Access Dissertations and Theses

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